An integrative analysis reveals the mechanism of plastic stabilizers inducing breast cancer
Xingfa Huo1, Xueqin Duan1, Xiaojuan Huang2
1Precision Medicine Center of Oncology, The Affiliated Hospital of Qingdao University, Qingdao, China.
Abstract:
Plastic stabilizers (PSs) are chemical additives that are widely used to inhibit the degradation of plastics. However, their safety concerns and potential carcinogenic risks remain unclear. This study employed network toxicology strategies to elucidate the potential toxic effects and underlying molecular mechanisms of representative PSs, including 2,6-di-tert-butylphenol (2,6-DTB), tert-butylhydroquinone (TBHQ), and 2-(2H-benzotriazol-2-yl)-4,6-di-tert-pentylphenol (UV-328) in breast cancer (BC). Herein, we identified 69 potential genes related to PSs exposure and BC, and optimized five core targets: GSK3B, MAPK14, PARP1, PIM1, and TRDMT1, through subsequent LASSO and SVM algorithms. Based on these core genes, we constructed risk score and nomogram models, both of which revealed that high expression of these five core genes predicts poor prognosis in BC patients. Additionally, molecular docking and dynamic simulations indicated high-affinity interactions between PSs and these core targets (binding energies < -5 kcal/mol). Further correlation analysis with prediction analysis of microarray 50 (PAM50) revealed increased expression of all core genes in the basal-like subtype, especially PIM1 and TRDMT1, which also exhibited the highest risk scores. In vitro, PSs transcriptionally upregulated MAPK14, PIM1, and TRDMT1, with STAT3 mediating their transcription. Importantly, cell counting kit-8 and wound healing assays demonstrated that PSs promote BC cell proliferation and migration. Our research re-evaluates the carcinogenic risks of plastic stabilizers and suggests that PSs may enhance breast cancer progression via targets such as MAPK14, PIM1, and TRDMT1. This study introduces a new approach for evaluating the safety of plastic additives and offers novel insights into the toxicological effects of PSs.
Insights
Plastic stabilizers (PSs) may increase breast cancer risk by promoting cell growth and migration. This study identifies key genes (MAPK14, PIM1, TRDMT1) involved in PSs-induced breast cancer progression.
Area of Science:
- Toxicology
- Molecular Biology
- Oncology
Background:
- Plastic stabilizers (PSs) are widely used but their carcinogenic risks are unclear.
- Understanding the molecular mechanisms of PSs in breast cancer (BC) is crucial for safety assessment.
Purpose of the Study:
- To elucidate the toxic effects and molecular mechanisms of PSs in breast cancer using network toxicology.
- To identify key molecular targets and develop predictive models for PSs-induced BC progression.
Main Methods:
- Network toxicology strategies, LASSO, and SVM algorithms were used to identify core genes.
- Molecular docking, dynamic simulations, and in vitro assays (CCK-8, wound healing) were performed.
- Correlation analysis with PAM50 subtypes and STAT3 mediation were investigated.
Main Results:
- 69 potential genes were identified, with five core targets (GSK3B, MAPK14, PARP1, PIM1, TRDMT1) selected.
- High expression of core genes predicted poor BC prognosis; PSs showed high-affinity interactions with these targets.
- PSs promoted BC cell proliferation and migration, upregulating MAPK14, PIM1, and TRDMT1 via STAT3.
Conclusions:
- PSs may enhance breast cancer progression through specific molecular targets like MAPK14, PIM1, and TRDMT1.
- This study provides a novel approach for evaluating plastic additive safety and understanding PSs' toxicological effects.
- The findings highlight potential carcinogenic risks associated with common plastic stabilizers.
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